The present invention relates to a cooling system, in particular to an improved liquid cooling heat exchanger module.
As the electronic industry blooms, the issue of heat dissipation of high-performance heat-generating electronic components arises. In a conventional heat dissipating device, the natural convection of air, a heat dissipating fan, or even a highly conductive component such as a heat pipe or a liquid cooling heat dissipation system is generally applied.
In a conventional liquid cooling heat dissipation system, a heat exchanger module in contact with the heat generating components is used for the cooling purpose, wherein a cooling liquid is filled into the heat exchanger module to absorb the heat generated by the heat generating components, and then the heat is carried to the heat exchanger module for heat dissipation. With reference to
However, the prior art still remains at the stage of increasing the time for the cooling liquid to stay in the heat exchanger module, so that most of the conventional heat exchanger modules usually come with the design of a complicated curved flow channel in order to achieve the effect of increasing the length of the flow channel and the time to keep the cooling liquid in the heat exchanger module. No matter how we increase the length of the flow channel, there is still a limitation of hardware dimensions, so that the conventional heat exchanger modules cannot overcome the aforementioned problems effectively. Obviously, a feasible solution is required.
In view of the foregoing problems, the inventor of the present invention conducted extensive researches and experiments, and finally provided a feasible design to overcome the problems.
Therefore, it is a primary objective of the present invention to provide an improved liquid cooling heat exchanger module capable of driving a cooling liquid to produce a vortex in the heat exchanger module, so as to achieve the effects of increasing the time for the cooling liquid to stay in the heat exchanger module, maximizing the cooling effect of the cooling liquid, and improving the heat dissipating efficiency.
To achieve the aforementioned objective, the present invention provides an improved liquid cooling heat exchanger module filled with a cooling liquid and comprising a casing and a cooling structure, wherein the interior of the casing is hollow, and the casing has an inlet and an outlet interconnected to the interior, and the cooling structure is installed in the casing, and the cooling structure has a vortex generating area concavely formed at a position opposite to the inlet, such that the cooling liquid can be filled into the casing from the inlet, and the cooling liquid is impacted in the vortex generating area to form a vortex.
To achieve the aforementioned objective, the present invention provides an improved liquid cooling heat exchanger module filled with a cooling liquid and comprising a casing and a cooling structure, wherein the interior of the casing is hollow, and the casing has an inlet and an outlet interconnected to the interior, and the cooling structure is installed in the casing and has a plurality of flow channels, and the cooling structure has a vortex generating area concavely formed at a position opposite to the inlet, such that the cooling liquid can be filled into the casing from the inlet, and after the cooling liquid is impacted in the vortex generating area to form a vortex, the cooling liquid flows into each of the flow channels.
The technical characteristics and contents of the present invention will become apparent with the following detailed description and related drawings. The drawings are provided for the purpose of illustrating the present invention only, but not intended for limiting the scope of the invention.
With reference to
With reference to
In summation, the present invention mainly designs a vortex generating area 110 concavely formed on the cooling structure 11 and at a position opposite to the inlet 100 of the casing 10, such that when the cooling liquid is filled into the casing 10, a cooling liquid is impacted directly in the vortex generating area 110 to form a vortex in the vortex generating area 110, so as to achieve the effect of extending the time for the cooling liquid to stay in the cooling structure 11, maximizing the cooling effect, and improving the heat dissipating efficiency. In a preferred embodiment of the present invention, the cooling structure 11 can be formed by erecting and separating a plurality of fins 14, and forming a flow channel 15 between two adjacent fins 14 for passing the cooling liquid, and the vortex generating area 110 is formed at the top of the fins 14, and the vortex generating area 110 is in a concave circular arc shape and preferably has an area that can cover the top of the fins 14 precisely.
In the first preferred embodiment of the present invention, the cooling structure 11 has a partition 16 installed between the flow channels 15 for dividing the flow channels 15 into left and right parts, such that when the cooling liquid in the vortex generating area 110 flows into each of the flow channels 15, the cooling liquid can flow out from both left and right sides of the cooling structure 11. In this preferred embodiment, the cooling structure 11 is formed by arranging the plurality of fins 14, so that a transversally cut groove 111 can be formed between two adjacent fins 14 and provided for embedding the partition 16 into the groove 111. In the meantime, the partition 16 has a concave arc edge 160 formed at the top of the partition 16 and in a shape corresponding to the concave shape of the vortex generating area 110.
With the aforementioned structural assembly, the improved liquid cooling heat exchanger module of the present invention is formed.
With reference to
It is noteworthy to point out that the inlet 100 of the casing 1 can be formed on a side of the casing 1 and at a position opposite to the vortex generating area 110. In other words, the inlet 100 is not limited to the position precisely opposite to the center of the vortex generating area 110, but a position shifted towards a side can make it easier for the cooling liquid to be impacted in the vortex generating area 110 to form the vortex, and thus allowing the cooling liquid to stay for a longer time. Such effect is even better at a position proximate to the edge of the vortex generating area 110. When fluid flows in a pipe, pressure drops due to energy loss, and the energy loss of the fluid is generally caused by forces for overcoming the internal friction as well as the collisions and energy exchange between particles of the fluid in a vortex, and the pressure difference before and after the fluid flows is defined as the drip of pressure. The drop of pressure varies with factors such as the flowing speed of the fluid inside the pipe, the level of smoothness of the pipe used in an operation of an air conditioning system, and the way of connecting the pipe with shrinkage and or enclosure.
With reference to
In summation of the description above, the present invention overcomes the drawbacks of the prior art and complies with the patent application requirements, and thus is duly filed for patent application.
While the invention has been described by means of specific embodiments, numerous modifications and variations could be made thereto by those skilled in the art without departing from the scope and spirit of the invention set forth in the claims.
Number | Date | Country | Kind |
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100217648 | Sep 2011 | TW | national |